TY - JOUR
T1 - Discontinuous Galerkin modeling of the Columbia River's coupled estuary-plume dynamics
AU - Vallaeys, Valentin
AU - Kärnä, Tuomas
AU - Delandmeter, Philippe
AU - Lambrechts, Jonathan
AU - Baptista, António M.
AU - Deleersnijder, Eric
AU - Hanert, Emmanuel
N1 - Funding Information:
V. Vallaeys visited NCF Science and Technology Center for Coastal Margin Observation and Prediction (Oregon Health & Science University) thanks to a grant of the “Fonds spéciaux de recherche” from the Université catholique de Louvain. E. Deleersnijder is an honorary research associate with the F.R.S-FNRS. Part of the computational resources were provided by the Consortium des Équipements de Calcul Intensif (CÉCI), funded by the Belgian Fund for Scientific Research (F.R.S-FNRS) under Grant No. 2.5020.11 .
Publisher Copyright:
© 2018 Elsevier Ltd
PY - 2018/4
Y1 - 2018/4
N2 - The Columbia River (CR) estuary is characterized by high river discharge and strong tides that generate high velocity flows and sharp density gradients. Its dynamics strongly affects the coastal ocean circulation. Tidal straining in turn modulates the stratification in the estuary. Simulating the hydrodynamics of the CR estuary and plume therefore requires a multi-scale model as both shelf and estuarine circulations are coupled. Such a model has to keep numerical dissipation as low as possible in order to correctly represent the plume propagation and the salinity intrusion in the estuary. Here, we show that the 3D baroclinic discontinuous Galerkin finite element model SLIM 3D is able to reproduce the main features of the CR estuary-to-ocean continuum. We introduce new vertical discretization and mode splitting that allow us to model a region characterized by complex bathymetry and sharp density and velocity gradients. Our model takes into account the major forcings, i.e. tides, surface wind stress and river discharge, on a single multi-scale grid. The simulation period covers the end of spring-early summer of 2006, a period of high river flow and strong changes in the wind regime. SLIM 3D is validated with in-situ data on the shelf and at multiple locations in the estuary and compared with an operational implementation of SELFE. The model skill in the estuary and on the shelf indicate that SLIM 3D is able to reproduce the key processes driving the river plume dynamics, such as the occurrence of bidirectional plumes or reversals of the inner shelf coastal currents.
AB - The Columbia River (CR) estuary is characterized by high river discharge and strong tides that generate high velocity flows and sharp density gradients. Its dynamics strongly affects the coastal ocean circulation. Tidal straining in turn modulates the stratification in the estuary. Simulating the hydrodynamics of the CR estuary and plume therefore requires a multi-scale model as both shelf and estuarine circulations are coupled. Such a model has to keep numerical dissipation as low as possible in order to correctly represent the plume propagation and the salinity intrusion in the estuary. Here, we show that the 3D baroclinic discontinuous Galerkin finite element model SLIM 3D is able to reproduce the main features of the CR estuary-to-ocean continuum. We introduce new vertical discretization and mode splitting that allow us to model a region characterized by complex bathymetry and sharp density and velocity gradients. Our model takes into account the major forcings, i.e. tides, surface wind stress and river discharge, on a single multi-scale grid. The simulation period covers the end of spring-early summer of 2006, a period of high river flow and strong changes in the wind regime. SLIM 3D is validated with in-situ data on the shelf and at multiple locations in the estuary and compared with an operational implementation of SELFE. The model skill in the estuary and on the shelf indicate that SLIM 3D is able to reproduce the key processes driving the river plume dynamics, such as the occurrence of bidirectional plumes or reversals of the inner shelf coastal currents.
KW - Columbia River estuary
KW - Multi-scale model
KW - Plume dynamics
KW - River-to-ocean continuum
KW - Unstructured mesh
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U2 - 10.1016/j.ocemod.2018.02.004
DO - 10.1016/j.ocemod.2018.02.004
M3 - Article
AN - SCOPUS:85042746043
SN - 1463-5003
VL - 124
SP - 111
EP - 124
JO - Ocean Modelling
JF - Ocean Modelling
ER -